Enhanced Performance of an Acoustofluidic Device by Integrating Temperature Control

Author:

Hashemiesfahan Mehrnaz12ORCID,Gelin Pierre1ORCID,Maisto Antonio1ORCID,Gardeniers Han2ORCID,De Malsche Wim1ORCID

Affiliation:

1. µFlow Group, Department of Chemical Engineering, Vrije Universiteit Brussel, 1050 Brussels, Belgium

2. Mesoscale Chemical Systems Group, MESA+ Institute for Nanotechnology, Faculty of Science and Technology, University of Twente, 7500 AE Enschede, The Netherlands

Abstract

Acoustofluidics is an emerging research field wherein either mixing or (bio)-particle separation is conducted. High-power acoustic streaming can produce more intense and rapid flow patterns, leading to faster and more efficient liquid mixing. However, without cooling, the temperature of the piezoelectric element that is used to supply acoustic power to the fluid could rise above 50% of the Curie point of the piezomaterial, thereby accelerating its aging degradation. In addition, the supply of excessive heat to a liquid may lead to irreproducible streaming effects and gas bubble formation. To control these phenomena, in this paper, we present a feedback temperature control system integrated into an acoustofluidic setup using bulk acoustic waves (BAWs) to elevate mass transfer and manipulation of particles. The system performance was tested by measuring mixing efficiency and determining the average velocity magnitude of acoustic streaming. The results show that the integrated temperature control system keeps the temperature at the set point even at high acoustic powers and improves the reproducibility of the acoustofluidic setup performance when the applied voltage is as high as 200 V.

Funder

Strategic Research Program on Microfluidics

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Mechanical Engineering,Control and Systems Engineering

Reference43 articles.

1. Acoustofluidic separation of cells and particles;Wu;Microsyst. Nanoeng.,2019

2. Recent advances in acoustofluidic separation technology in biology;Fan;Microsyst. Nanoeng.,2022

3. Applications of acoustofluidics in bioanalytical chemistry;Li;Anal. Chem.,2019

4. Fabrication and Operation of Acoustofluidic Devices Supporting Bulk Acoustic Standing Waves for Sheathless Focusing of Particles;Iv;J. Vis. Exp.,2016

5. Continuum modeling of hydrodynamic particle–particle interactions in microfluidic high-concentration suspensions;Ley;Lab Chip,2016

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